From single- to multiple-soliton solutions of the perturbed KdV equation

被引:14
|
作者
Zarmi, Yair [1 ,2 ]
机构
[1] Ben Gurion Univ Negev, Jacob Blaustein Inst Desert Res, IL-84990 Midreshet Ben Gurion, Israel
[2] Ben Gurion Univ Negev, Dept Phys, IL-84990 Midreshet Ben Gurion, Israel
关键词
Perturbed KdV equation; Solitons; Anti-solitons; Elastic and inelastic interactions;
D O I
10.1016/j.physd.2008.07.007
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
The solution of the perturbed KdV equation (PKDVE), when the zero-order approximation is a multiple-soliton wave, is constructed as a sum of two components: elastic and inelastic. The elastic component preserves the elastic nature of soliton collisions. Its perturbation series is identical in structure to the series-solution of the PKDVE when the zero-order approximation is a single soliton. The inelastic component exists only in the multiple-soliton case, and emerges from the first order and onwards. Depending on initial data or boundary conditions, it may contain, in every order, a plethora of inelastic processes. Examples are given of sign-exchange soliton-anti-soliton scattering, soliton-anti-soliton creation or annihilation, soliton decay or merging, and inelastic soliton deflection. The analysis has been carried out through third order in the expansion parameter, exploiting the freedom in the expansion to its fullest extent. Both elastic and inelastic components do not modify soliton parameters beyond their Values in the zero-order approximation. When the MOVE is not asymptotically integrable, the new expansion scheme transforms it into a system of two equations: The Normal Form for ordinary KdV solitons. and an auxiliary equation describing the contribution of obstacles to asymptotic integrability to the inelastic component. Through the orders studied, the solution of the latter is a conserved quantity, which contains the dispersive wave that has been observed in previous works. (C) 2008 Elsevier B.V. All rights reserved.
引用
收藏
页码:2987 / 3007
页数:21
相关论文
共 50 条
  • [41] Two-mode fifth-order KdV equations: necessary conditions for multiple-soliton solutions to exist
    Abdul-Majid Wazwaz
    Nonlinear Dynamics, 2017, 87 : 1685 - 1691
  • [42] Renormalization Group Method for Soliton Evolution in a Perturbed KdV Equation
    Tu Tao
    Wang Lin-Jun
    Hao Xiao-Jie
    Guo Guang-Can
    Guo Guo-Ping
    CHINESE PHYSICS LETTERS, 2009, 26 (06)
  • [43] SOLITON-SOLUTIONS OF THE CYLINDRICAL KDV EQUATION
    NAKAMURA, A
    CHEN, HH
    JOURNAL OF THE PHYSICAL SOCIETY OF JAPAN, 1981, 50 (02) : 711 - 718
  • [44] New approximate solutions of the perturbed KdV equation
    Niu, XH
    Pan, ZL
    PHYSICS LETTERS A, 2006, 349 (1-4) : 192 - 197
  • [45] Soliton Solutions of a Generalized Discrete KdV Equation
    Kanki, Masataka
    Mada, Jun
    Tokihiro, Tetsuji
    JOURNAL OF THE PHYSICAL SOCIETY OF JAPAN, 2012, 81 (08)
  • [47] New multiple-soliton (kink) solutions for the high-order Boussinesq-Burgers equation
    Guo, Peng
    Wu, Xiang
    Wang, Liangbi
    WAVES IN RANDOM AND COMPLEX MEDIA, 2016, 26 (03) : 383 - 396
  • [48] METHOD FOR FINDING N-SOLITON SOLUTIONS OF KDV EQUATION AND KDV LIKE EQUATION
    SAWADA, K
    KOTERA, T
    PROGRESS OF THEORETICAL PHYSICS, 1974, 51 (05): : 1355 - 1367
  • [49] Multiple-soliton and lump-kink solutions for a generalized (3
    Guan, Xue
    Liu, Wenjun
    RESULTS IN PHYSICS, 2020, 17
  • [50] On soliton solutions for perturbed Fokas–Lenells equation
    Cesar A.. Gomez S
    Harun-Or Roshid
    Mustafa Inc
    Lanre Akinyemi
    Hadi Rezazadeh
    Optical and Quantum Electronics, 2022, 54